4.6 Article

An emulator for the Lyman-α forest in beyond-ΛCDM cosmologies

Journal

Publisher

IOP Publishing Ltd
DOI: 10.1088/1475-7516/2021/05/033

Keywords

cosmological parameters from LSS; cosmological simulations; Lyman alpha forest; neutrino masses from cosmology

Funding

  1. UCL Cosmoparticle Initiative
  2. Research Capital Investment Fund (RCIF) by UK Research and Innovation (UKRI)
  3. Cosmology and Astroparticle Student and Postdoc Exchange Network (CASPEN)
  4. BEIS capital funding via STFC capital grants [ST/P002307/1, ST/R002452/1]
  5. STFC operations grant [ST/R00689X/1]
  6. STFC Ernest Rutherford Fellowship [ST/N003853/1]
  7. FSE funds trough the program Ramon y Cajal of the Spanish Ministry of Science and Innovation [RYC2018-025210]
  8. Science and Technology Facilities Council (STFC) Consolidated Grant [ST/R000476/1]
  9. Science Research Council (VR) of Sweden
  10. Dunlap Institute for Astronomy & Astrophysics, University of Toronto
  11. U.S. Department of Energy, Office of Science, Office of High Energy Physics [DE-AC02-05CH11231]
  12. research project grant Fundamental Physics from Cosmological Surveys - Swedish Research Council (VR) [2017-04212]

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Interpreting observations of the Lyman-alpha forest flux power spectrum requires interpolation between simulations. A Gaussian process emulator has been presented to model the 1D flux power spectrum, enabling predictions in extended cosmological models without the need for bespoke emulators. This approach is suitable for cosmologies where the linear matter power spectrum is accurately described by an amplitude and slope across a specific epoch, and in the regime probed by eBOSS/DESI data.
Interpreting observations of the Lyman-alpha forest flux power spectrum requires interpolation between a small number of expensive simulations. We present a Gaussian process emulator modelling the 1D flux power spectrum as a function of the amplitude and slope of the small-scale linear matter power spectrum, and the state of the intergalactic medium at the epoch of interest (2 < z < 4). This parameterisation enables the prediction of the flux power spectrum in extended cosmological models that are not explicitly included in the training set, eliminating the need to construct bespoke emulators for a number of extensions to Lambda CDM. Our emulator is appropriate for cosmologies in which the linear matter power spectrum is described to percent level accuracy by just an amplitude and slope across the epoch of interest, and in the regime probed by eBOSS/DESI data. We demonstrate this for massive neutrino cosmologies, where the emulator is able to predict the flux power spectrum in a Sigma m(nu) = 0.3 eV neutrino cosmology to sub-percent accuracy, without including massive neutrinos in the training simulations. Further parameters would be required to describe models with sharp features in the linear power, such as warm or light axion dark matter. This work will facilitate the combination of upcoming DESI data with observations of the cosmic microwave background, to obtain constraints on neutrino mass and other extensions to Lambda CDM cosmology.

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